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Brain Organoid Hub,

Publications and source records attributed to Brain Organoid Hub,.

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Human spinal cord organoids recapitulate developmental and disease-associated oligodendrocyte lineage signatures

Oligodendrocytes play essential roles in central nervous system development and homeostasis, and their dysfunction is a hallmark of numerous neurological disorders. However, human in vitro systems that support oligodendrocyte lineage progression while enabling the study of disease-relevant states remain limited. Here, we establish human spinal cord organoids (hSpO) and cortico-motor assembloids as platforms to model oligodendrocyte development, neuron-glia interactions, and cytokine-induced dysfunction. We show that hSpO generate oligodendrocyte lineage populations that transcriptionally resemble those found in the developing human spinal cord, and oligodendrocyte progenitor cells that exhibit physiologically-relevant functional properties, including migration and monosynaptic input from neurons. Exposure of assembloids to pro-inflammatory cytokines induces transcriptional changes across the oligodendrocyte lineage, characterized by altered lineage progression and acquisition of disease-associated gene expression programs that mirror signatures observed in multiple sclerosis patient tissue. Together, this work establishes hSpO and assembloids as in vitro systems for studying oligodendrocyte lineage development and disease-associated states in a human multi-cellular context.

cell biology↗

Temporal regulation of human reactive astrocytes reveals their capacity for antigen presentation

Astrocytes adapt to injury and disease by entering a reactive state defined by transcriptomic, morphological, and functional changes. Using a combination of human cortical organoids (hCOs) and primary fetal brain tissue, we investigated the plasticity of human astrocyte reactivity. We observed robust inflammatory transcriptomic and chromatin signatures following cytokine exposure, which varied with duration. To assess reversibility, we withdrew cytokines after acute or chronic exposure. In both cases, astrocytes returned to a quiescent genomic state within days. Chronic exposure induced MHC class II gene expression, normally restricted to professional antigen-presenting cells. We validated MHCII protein in primary tissue and hCOs and used co-immunoprecipitation and mass spectrometry to identify candidate antigens. Finally, we showed that exogenous peptides from fetal neurons could be presented by astrocytic MHCII.

neuroscience↗